Pillar of Engineering Product Development, Singapore University of Technology and Design, 8 Somapah Road, Singapore 487372, Singapore.
Academy of Fundamental and Interdisciplinary Sciences, Harbin Institute of Technology, Harbin 150001, China.
Nat Commun. 2017 Jan 4;8:13949. doi: 10.1038/ncomms13949.
Flexible electrochemical energy storage devices have attracted extensive attention as promising power sources for the ever-growing field of flexible and wearable electronic products. However, the rational design of a novel electrode structure with a good flexibility, high capacity, fast charge-discharge rate and long cycling lifetimes remains a long-standing challenge for developing next-generation flexible energy-storage materials. Herein, we develop a facile and general approach to three-dimensional (3D) interconnected porous nitrogen-doped graphene foam with encapsulated Ge quantum dot/nitrogen-doped graphene yolk-shell nano architecture for high specific reversible capacity (1,220 mAh g), long cycling capability (over 96% reversible capacity retention from the second to 1,000 cycles) and ultra-high rate performance (over 800 mAh g at 40 C). This work paves a way to develop the 3D interconnected graphene-based high-capacity electrode material systems, particularly those that suffer from huge volume expansion, for the future development of high-performance flexible energy storage systems.
柔性电化学储能器件作为极具前景的柔性和可穿戴电子产品的电源,受到了广泛关注。然而,合理设计具有良好柔韧性、高容量、快速充放电率和长循环寿命的新型电极结构仍然是开发下一代柔性储能材料的长期挑战。在此,我们开发了一种简便通用的方法,制备了三维(3D)相互连接的多孔氮掺杂石墨烯泡沫,其中封装了 Ge 量子点/氮掺杂石墨烯蛋黄壳纳米结构,用于实现高比可逆容量(1,220 mAh g-1)、长循环寿命(从第二次到 1,000 次循环的容量保持率超过 96%)和超高倍率性能(在 40 C 时超过 800 mAh g-1)。这项工作为开发 3D 相互连接的基于石墨烯的高容量电极材料体系铺平了道路,特别是对于那些遭受巨大体积膨胀的体系,为未来高性能柔性储能系统的发展奠定了基础。